B41H:
Iron Cycling in Terrestrial Ecosystems and Extreme Environments I Posters

Session ID#: 4452

Thursday, 18 December 2014: 8:00 AM-12:20 PM
Not an Option (Moscone West)
Chairs:  Daniel Liptzin, Soil Health Institute, Morrisville, United States and Jemma Wadham, University of Bristol, School of Geographical Sciences, Bristol, United Kingdom
Primary Convener:  Wendy H Yang, University of Illinois at Urbana-Champaign, Department of Plant Biology, Urbana, IL, United States
Co-conveners:  Daniel Liptzin, University of Colorado, Boulder, United States, Sophie L. Nixon, University of Edinburgh, Edinburgh, EH9, United Kingdom and Jemma Wadham, University of Bristol, School of Geographical Sciences, Bristol, United Kingdom
OSPA Liaison:  Jemma Wadham, University of Bristol, School of Geographical Sciences, Bristol, United Kingdom
Index Terms:
Virtual Option?: No

Abstracts Submitted to this Session:

 
Iron Mineral Catalyzed C-H Activation As a Potential Pathway for Halogenation Processes (6417)
Heinz Friedrich Schoeler1, Christoph Tubbesing1, Kathrin Benzing1, Torsten Krause1, Sabine Lippe1, Maik Rudloff1 and DFG Research Unit 763, (1)University of Heidelberg, Heidelberg, Germany
 
Iron Catalyzed Halogenation Processes in Saline Soils (6423)
Christoph Tubbesing1, Sabine Lippe1, Vanessa Kullik1, Laura Hauck1, Torsten Krause1, Frank Keppler2 and Heinz Friedrich Schoeler1, (1)University of Heidelberg, Heidelberg, Germany, (2)Max Planck Institute for Chemistry, Mainz, Germany
 
Diagenetic Iron Cycling in Ancient Alkaline Saline Lacustrine Sedimentary Rocks: A Case Study on the Jurassic Brushy Basin Member of the Morrison Formation, Colorado Plateau, USA (13191)
Sally L Potter-McIntyre, Southern Illinois University Carbondale, Carbondale, IL, United States, Marjorie A Chan, Univ Utah, Salt Lake City, United States and Brian J O L McPherson, University of Utah, Department of Civil and Environmental Engineering, Salt Lake City, United States
 
Formation of Biogenic Fe-Oxyhydroxides in an Extreme Thermal Environment (7014)
Xiaotong Peng, Shun Chen and Hengchao Xu, Sanya Institute of Deep-sea Science and Engineering, Deep-sea Science Division, Sanya, China
 
The structure of iron-oxyhydroxide mounds affected by iron-oxidizing bacteria at shallow submarine hydrothermal vent in Satsuma Iwo-Jima (12175)
Takashi Kuratomi1, Shoichi Kiyokawa2, Minoru Ikehara3, Shusaku Goto4, Tatsuhiko Hoshino5, Fumihiko Ikegami1 and Yuto Minowa1, (1)Kyushu University, Fukuoka, Japan, (2)Kyushu University, Department of Earth and Planetary Science, Fukuoka, Japan, (3)Kochi University, Center for Advanced Marine Core Research, Nankoku, Japan, (4)AIST, Tsukuba, Japan, (5)JAMSTEC Japan Agency for Marine-Earth Science and Technology, Kanagawa, Japan
 
Microbial Fe(III) Oxide Reduction in Chocolate Pots Hot Springs, Yellowstone National Park (26836)
Nathaniel W Fortney1, Eric E Roden1, Eric S Boyd2 and Brandon J Converse1, (1)University of Wisconsin Madison, Madison, WI, United States, (2)Montana State University, Department of Microbiology and Cell Biology, Bozeman, MT, United States
 
Dissolved Oxygen and Sulfide Define the Boundaries of Thermophilic Microbial Iron Mats (26887)
Brian St Clair, Arizona State University, Tempe, AZ, United States and Everett Shock, Arizona State University, School of Earth and Space Exploration, Tempe, AZ, United States
 
The glacial iron cycle from source to export (21813)
Jon Hawkings1, Jemma Wadham2, Martyn Tranter3, Robert Raiswell4, Liane G Benning4, Peter John Statham5, Andrew Tedstone6, Peter W Nienow6, Jon Telling3, Elizabeth Bagshaw3 and Sarah-Louise Simmons3, (1)University of Bristol, School of Geographical Sciences, Bristol, BS8, United Kingdom, (2)University of Bristol, Bristol Glaciology Centre, Bristol, United Kingdom, (3)University of Bristol, School of Geographical Sciences, Bristol, United Kingdom, (4)University of Leeds, School of Earth and Environment, Leeds, United Kingdom, (5)University of Southampton, Ocean and Earth Science, Southampton, SO14, United Kingdom, (6)University of Edinburgh, School of Geosciences, Edinburgh, United Kingdom
 
Structural and Chemical Modification of Fe-Rich Smectite Associated with Microbial Fe-Respiration By Psychrophilic Bacteria in King George Island, West Antarctica (2243)
Jaewoo Jung1, Jeeyoung Kim2, Hyoun Soo Lim3, Hoil Yoon4, Yoo Kyung Lee5, Kyeongyang Park6, Jungbae Lee6 and Jinwook Kim1, (1)Yonsei University, Seoul, Korea, Republic of (South), (2)NIER National Institute of Environmental Research, Incheon, Korea, Republic of (South), (3)Pusan University, Department of Geological Sciences, Pusan, Korea, Republic of (South), (4)KOPRI Korea Polar Research Institute, Incheon, Korea, Republic of (South), (5)Korea Polar Research Institute, Incheon, South Korea, (6)Hannam University, Daegeon, Korea, Republic of (South)
 
Implication for the occurrence of low temperature smectite to illite reaction in the Bering Sea slope sediments (IODP Expedition 323) (14611)
Akira Ijiri1,2, Shigeyuki Wakaki1, Masafumi Murayama3 and Fumio Inagaki1,2, (1)Japan Agency for Marine-Earth Science and Technology-JAMSTEC, Kochi Institute for Core Sample Research, Kochi, Japan, (2)Japan Agency for Marine-Earth Science and Technology-JAMSTEC, Research and Development Center for Submarine Resources, Yokosuka, Japan, (3)Kochi University, Faculty of Agriculture and Marine Science, Nankoku, Japan
 
Potential application of microbial iron redox cycles in nitrate removal and their effects on clay mineral properties (24360)
Linduo Zhao, Miami University Oxford, Oxford, OH, United States, Hailiang Dong, Miami University Oxford, Oxford, United States, Ravi K Kukkadapu, Pacific Northwest National Laboratory, Richland, United States, Brandon R Briggs, Miami University, Oxford, OH, United States and Qiang Zeng, China University of Geosciences, School of the Earth Sciences and Resources, Beijing, China
 
Environmental Factors Affecting Ammonium Oxidation Under Iron Reducing Conditions (19263)
Shan Huang1, Melany Ruiz-Urigüen2 and Peter R Jaffe1, (1)Princeton University, Civil and Environmental Engineering, Princeton, NJ, United States, (2)Universidad San Francisco de Quito, Quito, Ecuador
 
A Description of an Acidophilic, Iron Reducer, Geobacter sp. FeAm09 Isolated from Tropical Soils (17256)
Olivia Healy1, Jesse Souchek1, Abigail Heithoff1, Brandon LaMere1, Donald Pan2, Gregory Hollis1, Wendy H Yang3, Whendee L Silver4 and Karrie A Weber2, (1)University of Nebraska Lincoln, Lincoln, NE, United States, (2)University of Nebraska-Lincoln, Biological Sciences, Lincoln, NE, United States, (3)University of Illinois at Urbana-Champaign, Department of Plant Biology, Urbana, IL, United States, (4)University of California, Berkeley, Dept. of Environmental Science, Policy, & Management, Berkeley, CA, United States
 
High Potential for Iron Reduction in Upland Soils from Diverse Terrestrial Ecosystems (30829)
Wendy H Yang, University of Illinois at Urbana-Champaign, Department of Plant Biology, Urbana, IL, United States and Daniel Liptzin, Soil Health Institute, Morrisville, United States
 
Role of Siderophores in Dissimilatory Iron Reduction in Arctic Soils : Effect of Direct Amendment of Siderophores to Arctic Soil (19630)
Archana J Srinivas1, Elizabeth A Dinsdale1,2 and David Lipson3, (1)San Diego State University, San Diego, CA, United States, (2)San Diego State University, Ecology, San Diego, CA, United States, (3)San Diego State University, Department of Biology, San Diego, United States
 
Soluble Iron as an In Situ Indicator of the Redox State of Humic Substances in Arctic Soil: Implications for Seasonal Regeneration of Oxidized Terminal Electron Acceptors (17546)
David Lipson1, Jaime E Zlamal2, Archana J Srinivas2 and Ted K Raab3, (1)San Diego State University, Department of Biology, San Diego, United States, (2)San Diego State University, San Diego, CA, United States, (3)Carnegie Inst of Washington, Stanford, CA, United States
 
Lifting the Humic Veil: A Novel Approach to Quantitating Occluded Iron in Peat Porewater (28004)
Timothy Joseph Veverica1, Evan S Kane2, Amy M Marcarelli1 and Sarah A Green3, (1)Michigan Technological University, Houghton, MI, United States, (2)Michigan Technological University, College of Forest Resources and Environmental Sciences, Houghton, United States, (3)US Department of State, Washington, DC, United States
 
The Redox Dynamics of Iron in a Seasonally Waterlogged Forest Soil (Chaux Forest, Eastern France) Traced with Rare Earth Element Distribution Patterns (18195)
Marc Steinmann1, Anne-Lise Floch2, Eric Lucot2 and Pierre-Marie Badot2, (1)Université Bourgogne Franche-Comté, Chrono-Environnement UMR UFC CNRS 6249, Besançon, France, (2)CNRS/Université de Franche-Comté, UMR 6249 Chrono-environnement, 25030 Besançon Cedex, France
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